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纳米润滑:在硬盘上使用紫外线(UV)照射形成图案化润滑膜。

Nanolubrication: patterned lubricating films using ultraviolet (UV) irradiation on hard disks.

作者信息

Zhang J, Hsu S M, Liew Y F

机构信息

Data Storage Institute, 5 Engineering Drive 1, SG 117608, Singapore.

出版信息

J Nanosci Nanotechnol. 2007 Jan;7(1):286-92.

Abstract

Nanolubrication is emerging to be the key technical barrier in many devices. One of the key attributes for successful device lubrication is self-sustainability using only several molecular layers. For single molecular species lubrication, one desires bonding strength and molecular mobility to repair the contact by diffusing back to the contact. One way to achieve this is the use of mask to shield the surface with a patterned surface texture, put a monolayer on the surface and induce bonding. Then re-deposit mobile molecules on the surface to bring the thickness back to the desired thickness. This paper describes the use of long wavelength UV irradiation (320-390 nm) to induce bonding of a perfluoropolyether (PFPE) on CN(x) disks for magnetic hard disk application. This allows the use of irradiation to control the degree of bonding on CN(x) coatings. The effect of induced bonding based on this wavelength was studied by comparing 100% mobile PFPE, 100% bonded PFPE, and a mixture of mobile and bonded PFPE in a series of laboratory tests. Using a lateral force microscope, a diamond-tipped atomic force microscope, and a ball-on-inclined plane apparatus, the friction and wear characteristics of these three cases were obtained. Results suggested that the mixed PFPE has the highest shear rupture strength.

摘要

纳米润滑正逐渐成为许多设备中的关键技术障碍。成功实现设备润滑的关键特性之一是仅使用几个分子层就能实现自我维持。对于单分子种类的润滑,人们期望通过扩散回接触区域来修复接触的结合强度和分子流动性。实现这一目标的一种方法是使用掩膜以具有图案化表面纹理的方式屏蔽表面,在表面上形成单层并诱导结合。然后在表面重新沉积可移动分子,使厚度恢复到所需厚度。本文描述了使用长波长紫外线照射(320 - 390纳米)来诱导全氟聚醚(PFPE)在用于磁性硬盘的CN(x)盘上的结合。这使得能够利用照射来控制CN(x)涂层上的结合程度。在一系列实验室测试中,通过比较100%可移动的PFPE、100%结合的PFPE以及可移动和结合的PFPE的混合物,研究了基于该波长的诱导结合效果。使用横向力显微镜、金刚石尖端原子力显微镜和球 - 斜面装置,获得了这三种情况下的摩擦和磨损特性。结果表明,混合的PFPE具有最高的剪切断裂强度。

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